基于石墨烯增强的D形双芯PCF−SPR矿用甲烷传感器设计

    Design of mine-used methane sensor based on graphene-enhanced D-shaped PCF-SPR

    • 摘要: 煤矿井下传统催化燃烧式甲烷传感器易受硫中毒影响,且需依赖富氧环境;而红外或激光类传感器普遍存在功耗较高的问题,难以同时兼顾远距离无线传输与EPL Ma级(最高设备保护等级) 的防爆要求,导致其在采掘工作面、采空区等高危区域应用受限。为此,提出了一种基于石墨烯增强的D形光子晶体光纤表面等离子体共振(Photonic Crystal Fiber−Surface Plasmon Resonance,PCF−SPR)新型矿用甲烷传感器,通过在D形光纤平滑面沉积石墨烯薄膜以激发表面的等离子体共振(Surface Plasmon Resonance,SPR)效应,显著提升气体检测灵敏度。采用有限元法系统地仿真分析了气孔直径、气孔间距及TiO2镀层对光纤光损耗的影响,并探究了被测气体折射率(RI)与传感器灵敏度的关联性。仿真结果表明:所设计传感器具备优异的光谱灵敏度(达17 200 nm/RIU),当甲烷折射率处于1.42~1.44时,传感分辨率达5.8×10−6 RIU,满足煤矿井下甲烷检测的高精度需求。基于石墨烯的化学稳定性及光纤的本质安全无源特性,该设计兼具防爆安全、抗湿、抗尘、抗电磁干扰能力,同时实现了高灵敏度与远距离分布式检测。

       

      Abstract: Traditional catalytic combustion methane sensors used in underground coal mines are susceptible to sulfur poisoning and require an oxygen-enriched operating environment. By contrast, infrared and laser-based sensors generally suffer from high power consumption, making it difficult to simultaneously satisfy the requirements of long-distance wireless transmission and EPL Ma level (the highest equipment protection level) explosion-proof standards. This limits their application in high-risk areas such as mining working faces and goafs. To address the above problems, a novel mine-used methane sensor based on graphene-enhanced D-shaped photonic crystal fiber surface plasmon resonance (PCF-SPR) is proposed. Graphene thin films are deposited on the polished flat surface of the D-shaped fiber to excite the surface plasmon resonance (SPR) effect, which significantly improves the gas detection sensitivity. The finite element method is adopted to systematically simulate and analyze the effects of air hole diameter, air hole spacing and TiO2 coating on the optical loss of the fiber, and the correlation between the refractive index (RI) of the measured gas and sensor sensitivity is investigated. The simulation results show that the designed sensor achieves an excellent spectral sensitivity of 17 200 nm/RIU. When the refractive index of methane ranges from 1.42 to 1.44, the sensing resolution reaches 5.8×106 RIU, which meets the high-precision detection requirements for methane in underground coal mines. Benefiting from the chemical stability of graphene and the intrinsically safe passive characteristics of optical fibers, the proposed design features explosion-proof safety, moisture resistance, dust resistance and electromagnetic interference immunity, and realizes high-sensitivity as well as long-distance distributed detection simultaneously.

       

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